Jing Zhang, Y. Shang, Peng Fang, Lei Zhang, Tian Bai, Xiaozhou Liu
Abstract
This study aims to screen for and target DPP9 expression in patient-derived tumor xenografts (PDTX) of Undifferentiated Pleomorphic Sarcoma (UPS) to advance personalized therapeutic strategies. We found that DPP9 mRNA expression is significantly upregulated in UPS patients. Single-cell RNA sequencing (scRNA-seq) further confirmed elevated DPP9 levels within the UPS tumor microenvironment. Functional studies demonstrated that shRNA-mediated knockdown of DPP9 suppressed tumor growth in UPS mouse models. Mechanistically, DPP9 promotes UPS cell proliferation by inhibiting mitochondria-dependent ferroptosis. Specifically, DPP9 reduces intracellular reactive oxygen species (ROS) accumulation and confers resistance to ferroptosis. Conversely, DPP9 downregulation induces ferroptosis by enhancing ROS production and mitochondrial dysfunction. Moreover, N6-methyladenosine (m 6 A) methylation enhances DPP9 mRNA stability in UPS, contributing to its overexpression. DPP9 also activates the NRF2 signaling axis by suppressing KEAP1-mediated ubiquitination and subsequent degradation of NRF2. This stabilization of NRF2 underlies DPP9's ability to inhibit mitochondria-dependent ferroptosis. Collectively, our findings identify DPP9 as a critical regulator of ferroptosis resistance in UPS and suggest that targeting DPP9 may represent a promising therapeutic strategy−not only for UPS, but potentially for other malignancies driven by dysregulated ferroptosis.
Citation format
ZHANG, Jing, et al. DPP9 expression in PDTX model of undifferentiated pleomorphic sarcoma reduced mitochondrial damage-induced ferroptosis for diagnosis and guidance for individualized clinical t. CRITICAL REVIEWS IN EUKARYOTIC GENE EXPRESSION, 2026, 36(2): 27–47.